Hajime Tanaka

25.9k total citations · 2 hit papers
523 papers, 20.7k citations indexed

About

Hajime Tanaka is a scholar working on Materials Chemistry, Atomic and Molecular Physics, and Optics and Condensed Matter Physics. According to data from OpenAlex, Hajime Tanaka has authored 523 papers receiving a total of 20.7k indexed citations (citations by other indexed papers that have themselves been cited), including 287 papers in Materials Chemistry, 102 papers in Atomic and Molecular Physics, and Optics and 95 papers in Condensed Matter Physics. Recurrent topics in Hajime Tanaka's work include Material Dynamics and Properties (240 papers), Theoretical and Computational Physics (84 papers) and Pickering emulsions and particle stabilization (64 papers). Hajime Tanaka is often cited by papers focused on Material Dynamics and Properties (240 papers), Theoretical and Computational Physics (84 papers) and Pickering emulsions and particle stabilization (64 papers). Hajime Tanaka collaborates with scholars based in Japan, United Kingdom and United States. Hajime Tanaka's co-authors include Takeaki Araki, John Russo, Takeshi Kawasaki, Hiroshi Shintani, Toshio Nishi, Rei Kurita, Daniel Bonn, Rui Shi, Akira Furukawa and C. Patrick Royall and has published in prestigious journals such as Nature, Science and Chemical Reviews.

In The Last Decade

Hajime Tanaka

504 papers receiving 20.3k citations

Hit Papers

Water: A Tale of Two Liquids 2008 2026 2014 2020 2016 2008 200 400 600

Peers — A (Enhanced Table)

Peers by citation overlap · career bar shows stage (early→late) cites · hero ref

Name h Career Trend Papers Cites
Hajime Tanaka Japan 76 13.1k 4.0k 3.5k 3.2k 2.5k 523 20.7k
Sidney R. Nagel United States 80 15.5k 1.2× 5.2k 1.3× 7.1k 2.0× 3.2k 1.0× 3.5k 1.4× 247 34.6k
Pablo G. Debenedetti United States 83 15.7k 1.2× 4.7k 1.2× 10.2k 2.9× 6.1k 1.9× 2.0k 0.8× 314 27.0k
Gary S. Grest United States 87 16.0k 1.2× 5.3k 1.3× 5.4k 1.5× 6.0k 1.9× 3.6k 1.4× 449 31.5k
Jack F. Douglas United States 81 16.2k 1.2× 3.2k 0.8× 7.1k 2.0× 2.4k 0.7× 2.2k 0.9× 548 28.7k
C. Austen Angell United States 87 22.4k 1.7× 4.0k 1.0× 5.5k 1.6× 3.4k 1.1× 3.0k 1.2× 346 36.4k
Shūichi Nosé Japan 19 12.9k 1.0× 1.8k 0.4× 4.2k 1.2× 6.8k 2.1× 2.5k 1.0× 42 28.7k
Morrel H. Cohen United States 63 9.1k 0.7× 2.8k 0.7× 2.3k 0.6× 5.8k 1.8× 3.1k 1.3× 209 18.3k
William G. Hoover United States 53 14.4k 1.1× 3.2k 0.8× 7.3k 2.1× 7.0k 2.2× 2.5k 1.0× 183 31.2k
Francesco Sciortino Italy 83 18.0k 1.4× 5.6k 1.4× 7.2k 2.1× 5.3k 1.6× 612 0.2× 405 24.4k
G. P. Johari Canada 54 11.2k 0.9× 938 0.2× 2.4k 0.7× 1.7k 0.5× 1.6k 0.7× 449 14.8k

Countries citing papers authored by Hajime Tanaka

Since Specialization
Citations

This map shows the geographic impact of Hajime Tanaka's research. It shows the number of citations coming from papers published by authors working in each country. You can also color the map by specialization and compare the number of citations received by Hajime Tanaka with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Hajime Tanaka more than expected).

Fields of papers citing papers by Hajime Tanaka

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Hajime Tanaka. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the papers produced by Hajime Tanaka. The network helps show where Hajime Tanaka may publish in the future.

Co-authorship network of co-authors of Hajime Tanaka

This figure shows the co-authorship network connecting the top 25 collaborators of Hajime Tanaka. A scholar is included among the top collaborators of Hajime Tanaka based on the total number of citations received by their joint publications. Widths of edges represent the number of papers authors have co-authored together. Node borders signify the number of papers an author published with Hajime Tanaka. Hajime Tanaka is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

20 of 20 papers shown
1.
Tanaka, Hajime, Noboru Numao, Naoko Kawamura, et al.. (2025). Enfortumab Vedotin for Metastatic Urothelial Carcinoma: Comprehensive Treatment Outcomes and Prognostic Insights From a Multicenter Real-World Study (YUSHIMA Study). Clinical Genitourinary Cancer. 23(2). 102301–102301. 4 indexed citations
2.
Tanaka, Hajime, et al.. (2025). Network-forming phase separation of oppositely charged polyelectrolytes forming coacervates in a solvent. Nature Communications. 16(1). 1517–1517. 2 indexed citations
3.
Hakimi, Kevin, Margaret Meagher, Franklin Liu, et al.. (2024). SHIFTING THE PARADIGM: THE INTRIGUING ROLE OF C-REACTIVE PROTEIN IN RENAL CELL CARCINOMA STAGING WITHIN THE AJCC SYSTEM -ANALYSIS OF THE INMARC REGISTRY. Urologic Oncology Seminars and Original Investigations. 42. S41–S41. 1 indexed citations
4.
Tanaka, Hajime, et al.. (2024). Mechanical Self-Organization of Particle Networks during Uniaxial Compression Yielding. Physical Review X. 14(1). 3 indexed citations
6.
Shi, Rui, et al.. (2023). Impact of hierarchical water dipole orderings on the dynamics of aqueous salt solutions. Nature Communications. 14(1). 4616–4616. 15 indexed citations
7.
Wang, Kexin, Jiping Huang, Hua Tong, et al.. (2023). Visualizing slow internal relaxations in a two-dimensional glassy system. Nature Physics. 19(7). 969–977. 14 indexed citations
9.
Murakami, Naoki, et al.. (2021). Birdcall Identification Using CNN and Gradient Boosting Decision Trees with Weak and Noisy Supervision.. CLEF (Working Notes). 1597–1608. 1 indexed citations
10.
Tanaka, Hajime. (2021). Roles of liquid structural ordering in glass transition, crystallization, and water's anomalies. SHILAP Revista de lepidopterología. 13. 100076–100076. 18 indexed citations
11.
Tong, Hua & Hajime Tanaka. (2019). Structural order as a genuine control parameter of dynamics in simple glass formers. Nature Communications. 10(1). 5596–5596. 65 indexed citations
12.
Russo, John, et al.. (2017). Formation of porous crystals via viscoelastic phase separation. Nature Materials. 16(10). 1022–1028. 38 indexed citations
13.
Furukawa, Akira & Hajime Tanaka. (2011). Direct evidence of heterogeneous mechanical relaxation in supercooled liquids. Physical Review E. 84(6). 61503–61503. 36 indexed citations
14.
Klix, Christian L., C. Patrick Royall, & Hajime Tanaka. (2010). Structural and Dynamical Features of Multiple Metastable Glassy States in a Colloidal System with Competing Interactions. Physical Review Letters. 104(16). 165702–165702. 91 indexed citations
15.
Furukawa, Akira, Kang Kim, Shinji Saito, & Hajime Tanaka. (2009). Anisotropic Cooperative Structural Rearrangements in Sheared Supercooled Liquids. Physical Review Letters. 102(1). 16001–16001. 70 indexed citations
16.
Kayen, Robert E., et al.. (2006). Terrestrial‐LIDAR Visualization of Surface and Structural Deformations of the 2004 Niigata Ken Chuetsu, Japan, Earthquake. Earthquake Spectra. 22(1S). 147–162. 50 indexed citations
17.
Iwashita, Yasutaka & Hajime Tanaka. (2005). Surface-Assisted Monodomain Formation of an Ordered Phase of Soft Matter via the First-Order Phase Transition. Physical Review Letters. 95(4). 47801–47801. 14 indexed citations
18.
Tanaka, Hajime. (2003). Relation between Thermodynamics and Kinetics of Glass-Forming Liquids. Physical Review Letters. 90(5). 55701–55701. 126 indexed citations
19.
Wada, Seiji, et al.. (1991). Combined Therapy of Interleukin 2 with Cyclophosphamide or Bacillus Calmette-Guérin against Implanted Bladder Cancer Cells in Mice. Urologia Internationalis. 47(1). 104–107. 2 indexed citations
20.
Tanaka, Hajime, et al.. (1988). FORMATION PROCESS OF TYPE-A ZEOLITE BY THE TREATMENT OF ALLOPHANE IN SODIUM HYDROXIDE SOLUTION. Clay science. 7(3). 171–183. 1 indexed citations

Rankless uses publication and citation data sourced from OpenAlex, an open and comprehensive bibliographic database. While OpenAlex provides broad and valuable coverage of the global research landscape, it—like all bibliographic datasets—has inherent limitations. These include incomplete records, variations in author disambiguation, differences in journal indexing, and delays in data updates. As a result, some metrics and network relationships displayed in Rankless may not fully capture the entirety of a scholar's output or impact.

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